4

I would like to run a bulk delete operation on a list of documents in MongoDB that have been selected by the user in the UI so I need to dynamically build a query that looks like the following (the or clause expands for every document selected):

{
    $and: [
        {
            "contentType": "application/vnd.sometype"
        },
        {
            $or: [
                {
                    "metadata.name": "someName",
                    "metadata.version": "someVersion"
                },
                {
                    "metadata.name": "someOtherName",
                    "metadata.version": "someOtherVersion"
                }
            ]
        }
    ]
},
Fields: null,
Sort: null

Just now I'm using string concatenation to achieve this.

Is it possible to build this query with the Spring Data MongoDB Criteria Builder (org.springframework.data.mongodb.core.query.Criteria)?

10

Doesn't this work for you?

Criteria criteria = Criteria.where("contentType").is("application/vnd.sometype");

List<Criteria> docCriterias = new ArrayList<Criteria>(docs.size());

for (Document doc: docs) {
    docCriterias.add(Criteria.where("metadata.name").is(doc.getName())
                               .and("metadata.version").is(doc.getVersion()));
}

criteria = criteria.orOperator(docCriterias.toArray(new Criteria[docs.size()]));

?

  • yes this works perfectly, thanks! – Jamie Cramb Jul 4 '14 at 9:39
  • @Artem Bilan criteria.orOperator(docCriterias.toArray(new Criteria[docs.size()])); im getting issue while converting my Criteria list to an Array its keep saying that orOperator not defined for Criteria[]? can you plese help? – Ramzan Zafar Aug 19 '14 at 11:17
  • Please, check your Spring Data MongoDB version. Try to use the latest one. – Artem Bilan Aug 19 '14 at 11:33
  • I'm using 1.5.0.RELEASE – Ramzan Zafar Aug 19 '14 at 12:12
  • its keep saying The method orOperator(Criteria...) in the type Criteria is not applicable for the arguments (Criteria[]) – Ramzan Zafar Aug 19 '14 at 12:20

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.